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49
0036_valid-sudoku/README.md
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49
0036_valid-sudoku/README.md
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Determine if a `9 x 9` Sudoku board is valid. Only the filled cells need to be validated **according to the following rules**:
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1. Each row must contain the digits `1-9` without repetition.
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2. Each column must contain the digits `1-9` without repetition.
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3. Each of the nine `3 x 3` sub-boxes of the grid must contain the digits `1-9` without repetition.
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**Note:**
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* A Sudoku board (partially filled) could be valid but is not necessarily solvable.
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* Only the filled cells need to be validated according to the mentioned rules.
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**Example 1:**
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![](https://upload.wikimedia.org/wikipedia/commons/thumb/f/ff/Sudoku-by-L2G-20050714.svg/250px-Sudoku-by-L2G-20050714.svg.png)
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Input: board =
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[["5","3",".",".","7",".",".",".","."]
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,["6",".",".","1","9","5",".",".","."]
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,[".","9","8",".",".",".",".","6","."]
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,["8",".",".",".","6",".",".",".","3"]
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,["4",".",".","8",".","3",".",".","1"]
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,["7",".",".",".","2",".",".",".","6"]
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,[".","6",".",".",".",".","2","8","."]
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,[".",".",".","4","1","9",".",".","5"]
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,[".",".",".",".","8",".",".","7","9"]]
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Output: true
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**Example 2:**
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Input: board =
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[["8","3",".",".","7",".",".",".","."]
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,["6",".",".","1","9","5",".",".","."]
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,[".","9","8",".",".",".",".","6","."]
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,["8",".",".",".","6",".",".",".","3"]
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,["4",".",".","8",".","3",".",".","1"]
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,["7",".",".",".","2",".",".",".","6"]
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,[".","6",".",".",".",".","2","8","."]
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,[".",".",".","4","1","9",".",".","5"]
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,[".",".",".",".","8",".",".","7","9"]]
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Output: false
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Explanation: Same as Example 1, except with the 5 in the top left corner being modified to 8. Since there are two 8's in the top left 3x3 sub-box, it is invalid.
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**Constraints:**
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* `board.length == 9`
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* `board[i].length == 9`
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* `board[i][j]` is a digit `1-9` or `'.'`.
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54
0036_valid-sudoku/python3/solution.py
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54
0036_valid-sudoku/python3/solution.py
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class Solution:
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def isValidSudoku(self, board: List[List[str]]) -> bool:
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#
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# NOTE: **READ THE PROBLEM DESCRIPTION ALWAYS!!**
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#
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# Even though it mentions Sudoku, it doesn't mean the
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# rules are the same as the real world. Which is the case
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# here — we need to only look at the filled cell and the rules
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# provided.
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size = len(board)
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# 1. Check if rows and cols are valid
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#
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# We can iterate both rows and cols at the same time since
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# the sudoku board has 9 rows and 9 cols
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for i in range(size):
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row = set()
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col = set()
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for j in range(size):
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# ith row check
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if board[i][j] != '.':
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if board[i][j] in row:
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return False
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row.add(board[i][j])
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# ith col check
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if board[j][i] != '.':
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if board[j][i] in col:
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return False
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col.add(board[j][i])
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# 2. Check if squares are valid
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#
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# We can do normal row * col iteration and use `// 3` to figure
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# out which square a cell belongs to
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squares = [[set(), set(), set()] for _ in range(3)]
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for i in range(size):
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for j in range(size):
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cell = board[i][j]
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if cell == '.':
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continue
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square = squares[i // 3][j // 3]
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if cell in square:
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return False
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square.add(cell)
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return True
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27
0049_group-anagrams/README.md
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27
0049_group-anagrams/README.md
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Given an array of strings `strs`, group **the anagrams** together. You can return the answer in **any order**.
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An **Anagram** is a word or phrase formed by rearranging the letters of a different word or phrase, typically using all the original letters exactly once.
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**Example 1:**
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Input: strs = ["eat","tea","tan","ate","nat","bat"]
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Output: [["bat"],["nat","tan"],["ate","eat","tea"]]
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**Example 2:**
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Input: strs = [""]
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Output: [[""]]
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**Example 3:**
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Input: strs = ["a"]
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Output: [["a"]]
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**Constraints:**
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* `1 <= strs.length <= 104`
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* `0 <= strs[i].length <= 100`
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* `strs[i]` consists of lowercase English letters.
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13
0049_group-anagrams/python3/naive.py
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13
0049_group-anagrams/python3/naive.py
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# Time: O(N * MlogM) where N is len(strs) and M is num of chars in a string
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# Space: O(N)
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class Solution:
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def groupAnagrams(self, strs: List[str]) -> List[List[str]]:
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groups = {}
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for s in strs:
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s_sorted = ''.join(sorted(s))
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groups[s_sorted] = groups.get(s_sorted, []) + [s]
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return list(groups.values())
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24
0049_group-anagrams/python3/solution.py
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24
0049_group-anagrams/python3/solution.py
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# Time: O(N · M)
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# Space: O(N)
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from collections import Counter, defaultdict
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class Solution:
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def groupAnagrams(self, strs: List[str]) -> List[List[str]]:
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# If key doesn't exist, creates empty list using `list`
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# factory/ctor function
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groups = defaultdict(list)
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for s in strs:
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# Keep counter for num of times each letter appeared
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counts = [0] * 26
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for c in s:
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i = ord(c) - ord('a')
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counts[i] += 1
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# Lists aren't hashable, so we need to convert the counts
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# to tuple so that we can key them
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groups[tuple(counts)].append(s)
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return list(groups.values())
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24
0217_contains-duplicate/README.md
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24
0217_contains-duplicate/README.md
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Given an integer array `nums`, return `true` if any value appears **at least twice** in the array, and return `false` if every element is distinct.
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**Example 1:**
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Input: nums = [1,2,3,1]
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Output: true
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**Example 2:**
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Input: nums = [1,2,3,4]
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Output: false
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**Example 3:**
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Input: nums = [1,1,1,3,3,4,3,2,4,2]
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Output: true
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**Constraints:**
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* `1 <= nums.length <= 105`
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* `-109 <= nums[i] <= 109`
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11
0217_contains-duplicate/python3/solution.py
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11
0217_contains-duplicate/python3/solution.py
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class Solution:
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def containsDuplicate(self, nums: List[int]) -> bool:
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counts = {}
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for num in nums:
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counts[num] = counts.get(num, 0) + 1
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if counts[num] > 1:
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return True
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return False
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8
0238_product-of-array-except-self/NOTES.md
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8
0238_product-of-array-except-self/NOTES.md
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## What if we were allowed to use division?
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Well, one might think that you can then find product(nums) and divide by nums[i] in the loop. But the problem with this approach is when there are 0s in the array. That causes the entire product to become zero.
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So, we probably need to keep track of zero count and the first zero index.
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1. If there are >1 zeroes, then the result would be all zeroes so.
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2. If there's only 1 zero, then we need to keep product excluding the zero to be kept. Then fill the result with all zeroes except for the 0 element's index which would equal the product.
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25
0238_product-of-array-except-self/README.md
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25
0238_product-of-array-except-self/README.md
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Given an integer array `nums`, return _an array_ `answer` _such that_ `answer[i]` _is equal to the product of all the elements of_ `nums` _except_ `nums[i]`.
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The product of any prefix or suffix of `nums` is **guaranteed** to fit in a **32-bit** integer.
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You must write an algorithm that runs in `O(n)` time and without using the division operation.
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**Example 1:**
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Input: nums = [1,2,3,4]
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Output: [24,12,8,6]
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**Example 2:**
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Input: nums = [-1,1,0,-3,3]
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Output: [0,0,9,0,0]
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**Constraints:**
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* `2 <= nums.length <= 105`
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* `-30 <= nums[i] <= 30`
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* The product of any prefix or suffix of `nums` is **guaranteed** to fit in a **32-bit** integer.
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**Follow up:** Can you solve the problem in `O(1)` extra space complexity? (The output array **does not** count as extra space for space complexity analysis.)
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25
0238_product-of-array-except-self/python3/solution.py
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25
0238_product-of-array-except-self/python3/solution.py
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from functools import reduce
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class Solution:
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def productExceptSelf(self, nums: List[int]) -> List[int]:
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# We can divide this problem by finding the prefix and
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# postfix products of a given element and then multiplying
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# them together
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result = [0] * len(nums)
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# Find prefix products, i.e, for ith element, store
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# product of 0 to a[i - 1]
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prefix = 1
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for i, num in enumerate(nums):
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result[i] = prefix
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prefix *= num
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# Find suffix products by iterating from the last, and
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# combine them with prefix in the same step to reduce cost
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suffix = 1
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for i in range(len(nums) - 1, -1, -1):
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result[i] *= suffix
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suffix *= nums[i]
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return result
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22
0242_valid-anagram/README.md
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22
0242_valid-anagram/README.md
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Given two strings `s` and `t`, return `true` _if_ `t` _is an anagram of_ `s`_, and_ `false` _otherwise_.
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An **Anagram** is a word or phrase formed by rearranging the letters of a different word or phrase, typically using all the original letters exactly once.
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**Example 1:**
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Input: s = "anagram", t = "nagaram"
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Output: true
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**Example 2:**
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Input: s = "rat", t = "car"
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Output: false
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**Constraints:**
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* `1 <= s.length, t.length <= 5 * 104`
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* `s` and `t` consist of lowercase English letters.
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**Follow up:** What if the inputs contain Unicode characters? How would you adapt your solution to such a case?
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13
0242_valid-anagram/python3/nlogn.py
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13
0242_valid-anagram/python3/nlogn.py
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# Time: O(NlogN)
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# Space: O(1)
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from collections import Counter
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class Solution:
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def isAnagram(self, s: str, t: str) -> bool:
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slen, tlen = len(s), len(t)
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if slen != tlen:
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return False
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return sorted(s) == sorted(t)
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8
0242_valid-anagram/python3/oneliner.py
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8
0242_valid-anagram/python3/oneliner.py
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# Time: O(N)
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# Space: O(N)
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from collections import Counter
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class Solution:
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def isAnagram(self, s: str, t: str) -> bool:
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return Counter(s) == Counter(t)
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21
0242_valid-anagram/python3/solution.py
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21
0242_valid-anagram/python3/solution.py
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# Time: O(N) where N is num of chars in string
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# Space: O(N) where N is num of chars in string
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from collections import Counter
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class Solution:
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def isAnagram(self, s: str, t: str) -> bool:
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slen, tlen = len(s), len(t)
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if slen != tlen:
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return False
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scounts, tcounts = {}, {}
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for i in range(slen):
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sc, tc = s[i], t[i]
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scounts[sc] = scounts.get(sc, 0) + 1
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tcounts[tc] = tcounts.get(tc, 0) + 1
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return scounts == tcounts
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41
0347_top-k-frequent-elements/python3/bucketsort.py
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41
0347_top-k-frequent-elements/python3/bucketsort.py
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class Solution:
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def topKFrequent(self, nums: List[int], k: int) -> List[int]:
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'''
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Approach using bucket sort
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'''
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c = Counter(nums)
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# Idea here is that the list indices will represent
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# the actual counts and we store elements matching thise
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# counts under the index. If size n list is provided, max
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# count possible is n but lists are 0-indexed so we set
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# num_bucket to have n+1 size.
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num_bucket = [[] for _ in range(len(nums) + 1)]
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# Later down, we will iterate in reverse through `num_bucket` and
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# instead of iterating through the entire list, we can take note
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# of the max count we observe and start from there instead.
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max_count_seen = -1
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for num, count in c.items():
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num_bucket[count].append(num)
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max_count_seen = max(max_count_seen, count)
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result = []
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j = max_count_seen
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# Iterate reverse through num_bucket (note the max_count_seen
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# optimization) and fill the result array until k elements are
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# added
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while j >= 0:
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for num in num_bucket[j]:
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result.append(num)
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# Possible that we filled k elements already in this inner
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# loop, so get out
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if len(result) == k:
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return result
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j -= 1
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@ -1,3 +1,4 @@
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from collections import Counter
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from heapq import heapify, heappop
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class Solution:
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Loading…
Reference in New Issue
Block a user